Environmental Technology · 2014 · 55 citations · 27 references
Chemical EngineeringSustainable Chemical ProductionEngineeringEnvironmental EngineeringRigid Waste PolyurethaneWaste TreatmentRecyclingGlycolysis RecyclingGlycolysis ReagentFoamRecycling TechnologyWaste ManagementGlycolysis ReagentsHydrothermal Processing
Rapid growth of rigid waste polyurethane (WPUR) foam from refrigerators attracts the attention all over the world. In this study, glycolysis was chosen to treat WPUR from scrapped refrigerators collected in Shanghai, China. Glycolysis reagents and catalysts were selected. The results indicated that the glycolysis efficiency of ethylene glycol (EG) was higher than that of diethylene glycol, and the catalytic efficiency of alkali metal salts (NaOH) was more excellent than that of triethanolamine and organic salts of alkali metal (NaAc). When EG was 100%WPUR as a glycolysis reagent and NaOH was 1%WPUR as a catalyst at a constant temperature of 197.85°C for 2 h, the glycolysis product had the highest glycolysis conversion rate. In order to maximize the recycling of WPUR, regenerative Polyurethane was performed by adding 10% distilled mixed polyol, which conformed to the QB/T 26689-2011 requirements.
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Recycling and Disposal Methods for Polyurethane Foam Wastes
Wenqing Yang, Qingyin Dong, Shili Liu et al. · Procedia Environmental Sciences · 2012 · 263 citations · Full text
Virginia Ribeiro da Silva, Mirna A. Mosiewicki, María Irene Yoshida et al. · Polymer Testing · 2013 · 154 citations · Full text
Glycolysis of waste flexible polyurethane foam
Chao‐Hsiung Wu, Ching‐Yuan Chang, Chien-Min Cheng et al. · Polymer Degradation and Stability · 2003 · 123 citations